Title of article :
Ion Currents Underlying Sinoatrial Node Pacemaker Activity: A New Single Cell Mathematical Model
Author/Authors :
L. Dokos، نويسنده , , Socrates and Celler، نويسنده , , Branko and Lovell، نويسنده , , Nigel، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 1996
Pages :
28
From page :
245
To page :
272
Abstract :
The ionic currents underlying autorhythmicity of the mammalian sinoatrial node and their wider contribution to each phase of the action potential have been investigated in this study using a new single cell mathematical model. The new model provides a review and update of existing formulations of sinoatrial node membrane currents, derived from a wide range of electrophysiological data available in the literature. Simulations of spontaneous activity suggest that the dominant mechanism underlying pacemaker depolarisation is the inward background Na+current,ib,Na. In contrast to previous models, the decay of the delayed rectifying K+current,iK, was insignificant during this phase. Despite the presence of a pseudo-outward background current throughout the pacemaker range of potentials (Na-K pump+leak currents), the hyperpolarisation-activated currentifwas not essential to pacemaker activity. A closer inspection of the current-voltage characteristics of the model revealed that the “instantaneous” time-independent current was inward for holding potentials in the pacemaker range, which rapidly became outward within 2 ms due to the inactivation of the L-type Ca2+current,iCa,L. This suggests that reports in the literature in which the net background current is outward throughout the pacemaker range of potentials may be exaggerated. The magnitudes of the action potential overshoot and the maximum diastolic potential were determined largely by the reversal potentials ofiCa,LandiKrespectively. The action potential was sustained by the incomplete deactivation ofiCa,Iand the Na-Ca exchanger,iNa,Ca. Despite the incorporation of “square-root” activation by [K]oof all K+currents, the model was unable to correctly simulate the response to elevated [K]o.
Journal title :
Journal of Theoretical Biology
Serial Year :
1996
Journal title :
Journal of Theoretical Biology
Record number :
1532944
Link To Document :
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